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Extending extended logistic regression for ensemble post-processing: Extended vs. separate vs. ordered vs. censored

机译:扩展集成后处理的扩展逻辑回归:分开与有序的审查

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摘要

Extended logistic regression is a recent ensemble calibration method that extends logistic regression to provide full continuous probability distribution forecasts. It assumes conditional logistic distributions for the (transformed) predictand and fits these using selected predictand category probabilities. In this study we compare extended logistic regression to the closely related ordered and censored logistic regression models. Ordered logistic regression avoids the logistic distribution assumption but does not yield full probability distribution forecasts, whereas censored regression directly fits the full conditional predictive distributions. To compare the performance of these and other ensemble post-processing methods we used wind speed and precipitation data from two European locations and ensemble forecasts from the European Centre for Medium-Range Weather Forecasts (ECMWF). Ordered logistic regression performed similarly to extended logistic regression for probability forecasts of discrete categories whereas full predictive distributions were better predicted by censored regression.
机译:扩展逻辑回归是最近的整体校准方法,可扩展逻辑回归以提供完整的连续概率分布预测。它假设(已转换的)预测和预测的条件逻辑分布,并使用选定的预测和类别概率对其进行拟合。在这项研究中,我们将扩展逻辑回归与紧密相关的有序和删失逻辑回归模型进行了比较。有序逻辑回归避免了逻辑分布假设,但没有得出完整的概率分布预测,而删失回归直接拟合了完整的条件预测分布。为了比较这些和其他集合后处理方法的性能,我们使用了来自两个欧洲位置的风速和降水数据以及欧洲中距离天气预报中心(ECMWF)的集合预报。对于离散类别的概率预测,有序逻辑回归的执行与扩展逻辑回归相似,而通过审查回归可以更好地预测完整的预测分布。

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